WO2024008115A1 - Procédé de communication, appareil de communication et support de stockage lisible par ordinateur - Google Patents

Procédé de communication, appareil de communication et support de stockage lisible par ordinateur Download PDF

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Publication number
WO2024008115A1
WO2024008115A1 PCT/CN2023/105859 CN2023105859W WO2024008115A1 WO 2024008115 A1 WO2024008115 A1 WO 2024008115A1 CN 2023105859 W CN2023105859 W CN 2023105859W WO 2024008115 A1 WO2024008115 A1 WO 2024008115A1
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Prior art keywords
value
time
waveform
time domain
domain template
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PCT/CN2023/105859
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English (en)
Chinese (zh)
Inventor
彭晓辉
钱彬
杨讯
董明杰
颜敏
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华为技术有限公司
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Publication of WO2024008115A1 publication Critical patent/WO2024008115A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B1/00Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
    • H04B1/02Transmitters
    • H04B1/04Circuits
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/30Monitoring; Testing of propagation channels
    • H04B17/382Monitoring; Testing of propagation channels for resource allocation, admission control or handover
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/38Synchronous or start-stop systems, e.g. for Baudot code
    • H04L25/40Transmitting circuits; Receiving circuits
    • H04L25/49Transmitting circuits; Receiving circuits using code conversion at the transmitter; using predistortion; using insertion of idle bits for obtaining a desired frequency spectrum; using three or more amplitude levels ; Baseband coding techniques specific to data transmission systems

Definitions

  • the present application relates to the field of communication, and in particular to communication methods, communication devices and computer-readable storage media.
  • Ultra wideband (UWB) technology is a wireless carrier communication technology that uses nanosecond-level non-sinusoidal narrow pulses to transmit data, so it occupies a wide spectrum range. Because its pulses are very narrow and the radiation spectrum density is extremely low, the UWB system has the advantages of strong multipath resolution, low power consumption, and strong confidentiality.
  • UWB signals or UWB pulses
  • the distance, angle, speed and other information of the target are extracted by detecting the echo of the UWB signal on the target.
  • the waveform of the UWB signal has a certain impact on its ranging performance and perception performance. Therefore, it is necessary to study UWB signals with strong ranging performance and sensing performance.
  • Embodiments of the present application disclose a communication method, a communication device and a computer-readable storage medium, which adopt a waveform whose peak value of the first side lobe belongs to the first peak range, and have strong ranging performance and sensing performance.
  • embodiments of the present application provide a communication method.
  • the method includes: generating a transmission signal, the peak value of the first side lobe of the transmission signal belongs to a first peak range, and the first peak range is [0.15, 0.3 ); send the transmission signal.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler Measured performance, i.e. perceived performance.
  • the transmission signal is a UWB signal (or UWB pulse).
  • the transmitted signal is a UWB signal.
  • UWB signals to perform ranging, angle measurement or Doppler measurements has the advantages of strong multipath resolution, low power consumption, and strong confidentiality.
  • the peak value of the second side lobe of the transmitted signal belongs to a second peak range, and the second peak range is [0.15, 0.3).
  • the peak value of the second side lobe of the transmitted signal belongs to the second peak range.
  • the transmitted signal is sent for ranging, angle measurement or Doppler measurement, which can improve the measurement of the transmission path (or reflected signal). Accuracy.
  • the corresponding width of the main lobe of the transmitted signal is less than 2.25*Tp, which can ensure the resolution of ranging and facilitate the differentiation of multiple targets with similar spatial distances.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than a width threshold.
  • the width threshold may be 5%, 8%, 10%, 15%, 20%, etc. of the width corresponding to the main lobe, which is not limited in the embodiment of this application.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than the width threshold, which can reduce side lobe energy and reduce side lobe energy leakage.
  • the generating the transmission signal includes: generating the transmission signal according to a time domain template, the time domain template The plate is used to define the peak value of the first side lobe of the transmitted signal.
  • the transmission signal is generated according to the time domain template, so that the peak value of the first side lobe of the generated transmission signal satisfies the definition (or constraint) of the time domain template.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal in order to ensure the perceptual performance of the generated transmitted signal.
  • the method further includes: sending indication information, where the indication information is used to indicate waveform information of the transmitted signal.
  • the instruction information is sent so that the receiving end can use the waveform of the UWB signal it transmits to perform interference cancellation, thereby improving ranging or sensing performance.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, and the third field is used to indicate a generation method of the transmission signal.
  • the third field indicates how the transmission signal is generated, so that the receiving end can further determine the waveform of the transmission signal, thereby performing interference cancellation based on the waveform of the transmission signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold.
  • the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the reference threshold can be 25dB, 28dB, 30dB, etc.
  • the transmitter can use waveforms in the first waveform set or the second waveform set to perform ranging, angle measurement, or Doppler measurement according to actual needs, so as to meet the needs of different scenarios.
  • the first side lobe is adjacent to and located on the right side of the main lobe in the transmitted signal.
  • the peak value of the side lobe adjacent to the right side of the main lobe belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and multiple Puller measurement performance.
  • the first side lobe is the lowest trough in the waveform of the transmitted signal, that is, the lowest trough, and the peak value of the first side lobe is the minimum corresponding to the waveform of the transmitted signal. trough value.
  • the absolute value of the minimum valley value corresponding to the waveform of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, which can not only ensure the ranging performance, but also Guaranteed performance of Doppler measurements.
  • the second side lobe is a side lobe with the highest peak on the right side of the first side lobe.
  • the peak value of the side lobe with the highest peak value on the right side of the first side lobe belongs to the first peak range, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, and ensure the ranging performance. It also ensures the performance of Doppler measurement.
  • any peak value on the right side of the first side lobe in the waveform of the transmitted signal (that is, the value of any wave peak) is less than or equal to the first value, and any peak value on the right side of the first side lobe is less than or equal to the first value.
  • Any valley value (that is, the value of any wave valley) is greater than or equal to the third value.
  • the upper boundary of the waveform on the right side of the first side lobe is the first value
  • the lower boundary is the third value.
  • the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter can be reduced, ensuring both ranging performance and Doppler measurement performance.
  • embodiments of the present application provide another communication method.
  • the method includes: receiving a transmission signal, the peak value of the first side lobe of the transmission signal belongs to a first peak range, and the first peak range is [0.15, 0.3); perform signal processing according to the transmitted signal.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler Measured performance.
  • the transmission signal is a UWB signal (or UWB pulse).
  • the transmitted signal is a UWB signal.
  • UWB signals to perform ranging, angle measurement or Doppler measurements has the advantages of strong multipath resolution, low power consumption, and strong confidentiality.
  • the peak value of the second side lobe of the transmitted signal belongs to a second peak range, and the second peak range is [0.15, 0.3).
  • the peak value of the second side lobe of the transmitted signal belongs to the second peak range, and the transmitted signal is sent for ranging, angle measurement, or Doppler measurement can improve the measurement accuracy of the emission path (or reflected signal).
  • the corresponding width of the main lobe of the transmitted signal is less than 2.25*Tp, which can ensure the resolution of ranging and facilitate the differentiation of multiple targets with similar spatial distances.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than a width threshold.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than the width threshold, which can effectively reduce side lobe energy and reduce side lobe energy leakage.
  • the transmission signal is generated according to a time domain template, and the time domain template is used to define a peak value of the first side lobe of the transmission signal.
  • the transmitted signal is generated according to a time domain template in order to ensure the performance of ranging, angle measurement or Doppler measurement of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal in order to ensure the perceptual performance of the generated transmitted signal.
  • the method further includes: receiving indication information, the indication information being used to indicate waveform information of the transmitted signal.
  • the indication information is received to obtain the waveform of the UWB signal transmitted by the transmitter, and then the waveform is used to eliminate interference, which can ensure both ranging performance and Doppler measurement performance.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, and the third field is used to indicate a generation method of the transmission signal.
  • the third field indicates how the transmitted signal is generated.
  • the receiving end determines the waveform of the transmitted signal based on the third field, so as to perform interference cancellation based on the waveform of the transmitted signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold. , the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to the first waveform set or the second waveform set, so as to accurately determine the waveform of the transmitted signal.
  • the first side lobe is the lowest trough in the waveform of the transmitted signal, that is, the lowest trough, and the peak value of the first side lobe is the minimum corresponding to the waveform of the transmitted signal. trough value.
  • the absolute value of the minimum valley value corresponding to the waveform of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, which can not only ensure the ranging performance, but also Guaranteed performance of Doppler measurements.
  • the second side lobe is a side lobe with the highest peak on the right side of the first side lobe.
  • the peak value of the side lobe with the highest peak value on the right side of the first side lobe belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring ranging performance, It also ensures the performance of Doppler measurement.
  • any peak value on the right side of the first side lobe in the waveform of the transmitted signal (that is, the value of any wave peak) is less than or equal to the first value, and any peak value on the right side of the first side lobe is less than or equal to the first value.
  • Any valley value (that is, the value of any wave valley) is greater than or equal to the third value.
  • the upper boundary of the waveform on the right side of the first side lobe is the first value
  • the lower boundary is the third value.
  • the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter can be reduced, ensuring both ranging performance and Doppler measurement performance.
  • the method further includes: obtaining channel impulse response information according to the transmission signal; and under direct line of sight LOS conditions, sending the channel impulse response information using the earliest arriving path as a reference; And/or, under non-direct line-of-sight NLOS conditions, the channel impulse response information is transmitted using the strongest path as a reference.
  • the earliest arriving path is used as a reference to send the channel impulse response information;
  • the strongest path is used as a reference to send the channel impulse response information;
  • embodiments of the present application provide another communication method, which method includes: generating indication information; and sending the indication information, where the indication information is used to indicate the waveform of the UWB signal transmitted by the transmitting end.
  • indication information is sent, which indicates the waveform of the UWB signal transmitted by the transmitting end, so that the receiving end can perform interference cancellation according to the waveform of the UWB signal transmitted by the transmitting end.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, and the third field is used to indicate a generation method of the transmission signal.
  • the third field indicates how the transmission signal is generated, so that the receiving end can further determine the waveform of the transmission signal, thereby performing interference cancellation based on the waveform of the transmission signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold. , the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the transmitter can use waveforms in the first waveform set or the second waveform set to perform ranging, angle measurement, or Doppler measurement according to actual needs, so as to meet the needs of different scenarios.
  • the method further includes: generating a transmission signal, the peak value of the first side lobe of the transmission signal belongs to a first peak range, and the first peak range is [0.15, 0.3), so The transmission signal belongs to the UWB signal transmitted by the transmitting end; the transmission signal is sent, and the transmission signal is used for ranging, angle measurement or Doppler measurement.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler Measured performance.
  • the transmission signal is a UWB signal (or UWB pulse).
  • the transmitted signal is a UWB signal.
  • UWB signals to perform ranging, angle measurement or Doppler measurements has the advantages of strong multipath resolution, low power consumption, and strong confidentiality.
  • the peak value of the second side lobe of the transmitted signal belongs to a second peak range, and the second peak range is [0.15, 0.3).
  • the peak value of the second side lobe of the transmitted signal belongs to the second peak range.
  • the transmitted signal is sent for ranging, angle measurement or Doppler measurement, which can improve the measurement of the transmission path (or reflected signal). Accuracy.
  • the corresponding width of the main lobe of the transmitted signal is less than 2.25*Tp, which can ensure the resolution of ranging and facilitate the differentiation of multiple targets with similar spatial distances.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than a width threshold.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than the width threshold, which can effectively reduce side lobe energy and reduce side lobe energy leakage.
  • generating the transmission signal includes: generating the transmission signal according to a time domain template, where the time domain template is used to define a peak value of the first side lobe of the transmission signal.
  • the transmission signal is generated according to the time domain template, so that the peak value of the first side lobe of the generated transmission signal satisfies the definition (or constraint) of the time domain template.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal in order to ensure the perceptual performance of the generated transmitted signal.
  • embodiments of the present application provide another communication method, which method includes: receiving indication information, the indication information being used to indicate the waveform of the UWB signal transmitted by the transmitting end; and performing interference cancellation according to the indication information.
  • the receiving end by receiving the indication information, the receiving end can better perform interference cancellation according to the waveform of the UWB signal transmitted by the transmitting end.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, and the third field is used to indicate a generation method of the transmission signal.
  • the third field indicates how the transmitted signal is generated.
  • the receiving end determines the waveform of the transmitted signal based on the third field, so as to perform interference cancellation based on the waveform of the transmitted signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold. , the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to the first waveform set or the second waveform set, so as to accurately determine the waveform of the transmitted signal.
  • the method further includes: receiving a transmission signal, the peak value of the first side lobe of the transmission signal belongs to a first peak range, and the first peak range is [0.15, 0.3); according to The signal is emitted to perform ranging, angle measurement or Doppler measurement.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler Measured performance.
  • the transmission signal is a UWB signal (or UWB pulse).
  • the transmitted signal is a UWB signal.
  • UWB signals to perform ranging, angle measurement or Doppler measurements has the advantages of strong multipath resolution, low power consumption, and strong confidentiality.
  • the peak value of the second side lobe of the transmitted signal belongs to a second peak range, and the second peak range is [0.15, 0.3).
  • the peak value of the second side lobe of the transmitted signal belongs to the second peak range.
  • the transmitted signal is sent for ranging, angle measurement or Doppler measurement, which can improve the measurement of the transmission path (or reflected signal). Accuracy.
  • the corresponding width of the main lobe of the transmitted signal is less than 2.25*Tp, which can ensure the resolution of ranging and facilitate the differentiation of multiple targets with similar spatial distances.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than a width threshold.
  • side lobe energy can be effectively reduced and side lobe energy leakage can be reduced.
  • the transmission signal is generated according to a time domain template, and the time domain template is used to define a peak value of the first side lobe of the transmission signal.
  • the transmitted signal is generated according to a time domain template in order to ensure the performance of ranging, angle measurement or Doppler measurement of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal in order to ensure the perceptual performance of the generated transmitted signal.
  • embodiments of the present application provide another communication method, which method includes: generating a transmission signal, the waveform of the transmission signal satisfies the constraints of the time domain template, and the upper boundary of the time domain template within the first time unit
  • the corresponding value is 1.
  • the upper boundary of the time domain template in the second time unit corresponds to the first value.
  • the first value is greater than or equal to 0.15 and less than 0.3.
  • the second time unit is in the first time. After the unit; sends the transmit signal, the first signal is used for ranging, angle measurement or Doppler measurement.
  • the first time unit corresponds to the width corresponding to the main lobe of the transmission signal
  • the second time unit is the time corresponding to each side lobe on the right side of the main lobe of the transmission signal.
  • the upper boundary of the time domain template within the second time unit corresponds to the peak of the second side lobe of the transmitted signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template, and the upper boundary of the time domain template in the second time unit corresponds to the first value, which can reduce the impact of the direct viewing diameter of the transmitted signal on the non-direct viewing diameter. It can ensure both ranging performance and Doppler measurement performance.
  • the lower boundary of the time domain template in the third time unit corresponds to the second value
  • a part of the third time unit belongs to the first time unit
  • the other part belongs to the third time unit.
  • the second value is less than or equal to -0.15 and greater than -0.3.
  • the lower boundary of the time domain template within the third time unit corresponds to the peak value of the first side lobe of the transmitted signal.
  • the lower boundary of the time domain template in the third time unit corresponds to the second value, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, which can not only ensure the ranging performance, but also Guaranteed performance of Doppler measurements.
  • the lower boundary of the time domain template corresponds to a third value in a fourth time unit, the fourth time unit is after the third time unit, and the third value is less than or Equal to -0.05 and greater than -0.3.
  • the lower boundary of the time domain template in the fourth time unit corresponds to the third value, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, ensuring both ranging performance and multiple Puller measurement performance.
  • the method further includes: sending indication information, where the indication information is used to indicate waveform information of the transmitted signal.
  • indication information is sent so that the receiving end uses the waveform of the transmitted signal to perform interference cancellation.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, and the third field is used to indicate a generation method of the transmission signal.
  • the third field indicates how the transmission signal is generated, so that the receiving end can further determine the waveform of the transmission signal, thereby performing interference cancellation based on the waveform of the transmission signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold. , the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the transmitter can use waveforms in the first waveform set or the second waveform set to perform ranging, angle measurement, or Doppler measurement according to actual needs, so as to meet the needs of different scenarios.
  • embodiments of the present application provide another communication method.
  • the method includes: receiving a transmission signal, the waveform of the transmission signal satisfies the constraints of the time domain template, and the upper boundary of the time domain template within the first time unit
  • the corresponding value is 1.
  • the upper boundary of the time domain template in the second time unit corresponds to the first value.
  • the first value is greater than or equal to 0.15 and less than 0.3.
  • the second time unit is in the first time. After the unit; perform ranging or Doppler measurement according to the transmitted signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template.
  • the upper boundary of the time domain template in the second time unit corresponds to the first value.
  • the transmitted signal is used to perform ranging, angle measurement or Doppler measurement. It can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, ensuring both ranging performance and Doppler measurement performance.
  • the lower boundary of the time domain template in the third time unit corresponds to the second value
  • a part of the third time unit belongs to the first time unit
  • the other part belongs to the third time unit.
  • the second value is less than or equal to -0.15 and greater than -0.3.
  • the lower boundary of the time domain template within the third time unit corresponds to the peak value of the first side lobe of the transmitted signal.
  • the lower boundary of the time domain template in the third time unit corresponds to the second value, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, which can not only ensure the ranging performance, but also Guaranteed performance of Doppler measurements.
  • the lower boundary of the time domain template corresponds to a third value in a fourth time unit, the fourth time unit is after the third time unit, and the third value is less than or Equal to -0.05 and greater than -0.3.
  • the lower boundary of the time domain template in the fourth time unit corresponds to the third value, which can reduce the impact of the direct sight diameter of the transmitted signal on the non-direct sight diameter, ensuring both ranging performance and multiple Puller measurement performance.
  • the method further includes: receiving indication information, the indication information being used to indicate waveform information of the transmitted signal.
  • the instruction information is received to obtain the waveform of the UWB signal transmitted by the transmitting end, and then the waveform is used to eliminate interference.
  • the indication information includes a first field, and the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs.
  • the indication information includes a first field through which the waveform set to which the transmitted signal belongs can be accurately indicated.
  • the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the indication information includes a second field.
  • the second field accurately indicates the waveform of the transmitted signal.
  • the indication information includes a third field, the third field is used to indicate the generation of the transmission signal Way.
  • the third field indicates how the transmitted signal is generated.
  • the receiving end determines the waveform of the transmitted signal based on the third field, so as to perform interference cancellation based on the waveform of the transmitted signal.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to a first waveform set or a second waveform set, and the PSLR of the waveforms in the first waveform set is less than a reference threshold. , the PSLR of the waveforms in the second waveform set is greater than or equal to the reference threshold.
  • the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to the first waveform set or the second waveform set, so as to accurately determine the waveform of the transmitted signal.
  • an embodiment of the present application provides a communication device, which has the function of implementing the behavior in the method embodiment of the first aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the processing module is used to generate a transmission signal, and the peak value of the first side lobe of the transmission signal belongs to the first peak range, so The first peak range is [0.15, 0.3); the transceiver module is used to send the transmission signal, and the transmission signal is used for ranging, angle measurement or Doppler measurement.
  • the processing module is specifically configured to generate the transmission signal according to a time domain template, where the time domain template is used to define the peak value of the first side lobe of the transmission signal.
  • the transceiver module is also used to send indication information.
  • the indication information is used to indicate the waveform of the UWB signal transmitted by the transmitting end.
  • the transmitted signal belongs to the UWB signal transmitted by the transmitting end. .
  • an embodiment of the present application provides a communication device, which has the function of implementing the behavior in the method embodiment of the second aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the transceiver module is used to receive a transmit signal, and the peak value of the first side lobe of the transmit signal belongs to the first peak range, so The first peak range is [0.15, 0.3); the processing module is used to perform ranging, angle measurement or Doppler measurement according to the transmitted signal.
  • the transceiver module is also used to receive indication information.
  • the indication information is used to indicate the waveform of the UWB signal transmitted by the transmitting end.
  • the transmitted signal belongs to the UWB signal transmitted by the transmitting end. .
  • an embodiment of the present application provides another communication device, which has the function of implementing the behavior in the method embodiment of the third aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the processing module is used to generate indication information; the transceiver module is used to send the indication information, and the indication information is Indicates the waveform of the UWB signal transmitted by the transmitter.
  • the processing module is also used to generate a transmission signal, the peak value of the first side lobe of the transmission signal belongs to the first peak range, and the transmission signal belongs to the UWB transmitted by the transmitting end. signal; the transceiver module is also used to send the transmission signal, and the transmission signal is used for ranging, angle measurement or Doppler measurement.
  • an embodiment of the present application provides another communication device, which has the function of implementing the behavior in the method embodiment of the fourth aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be realized by hardware, It can also be implemented by hardware executing corresponding software, and the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the transceiver module is used to receive indication information, the indication information is used to indicate the waveform of the UWB signal transmitted by the transmitting end; A processing module configured to perform interference cancellation according to the indication information.
  • the transceiver module is also used to receive a transmission signal, and the peak value of the first side lobe of the transmission signal belongs to the first peak range; the processing module is also used to receive the transmission signal according to the transmission signal. signal to perform ranging, goniometric or Doppler measurements.
  • an embodiment of the present application provides another communication device, which has the function of implementing the behavior in the method embodiment of the fifth aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the processing module is used to generate a transmission signal, and the waveform of the transmission signal satisfies the constraints of the time domain template.
  • the value corresponding to the upper boundary of the time domain template in the second time unit is 1, and the upper boundary of the time domain template in the second time unit corresponds to a first value, and the first value is greater than or equal to 0.15 and less than 0.3, and the third
  • the second time unit is after the first time unit; the transceiver module is used to send the transmission signal, and the first signal is used for ranging, angle measurement or Doppler measurement.
  • the transceiver module is also used to send indication information.
  • the indication information is used to indicate the waveform of an ultra-wideband UWB signal transmitted by the transmitting end.
  • the transmitted signal belongs to the UWB signal transmitted by the transmitting end. UWB signal.
  • Possible implementations of the communication device of the eleventh aspect may be referred to various possible implementations of the fifth aspect.
  • an embodiment of the present application provides another communication device, which has the function of realizing the behavior in the method embodiment of the sixth aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the transceiver module is used to receive a transmit signal, and the waveform of the transmit signal satisfies the constraints of the time domain template.
  • the transceiver module is used to receive a transmit signal, and the waveform of the transmit signal satisfies the constraints of the time domain template.
  • the value corresponding to the upper boundary of the time domain template in the second time unit is 1, and the upper boundary of the time domain template in the second time unit corresponds to a first value, and the first value is greater than or equal to 0.15 and less than 0.3, and the third The second time unit is after the first time unit; the processing module is used to perform ranging or Doppler measurement according to the transmitted signal.
  • the transceiver module is also used to receive indication information.
  • the indication information is used to indicate the waveform of an ultra-wideband UWB signal transmitted by the transmitting end.
  • the transmitted signal belongs to the UWB signal transmitted by the transmitting end. UWB signal.
  • Possible implementations of the communication device of the twelfth aspect may be referred to various possible implementations of the sixth aspect.
  • inventions of the present application provide another communication device.
  • the communication device includes a processor.
  • the processor is coupled to a memory.
  • the memory is used to store programs or instructions. When the program or instructions are executed by the processor , causing the communication device to perform the method shown in any one of the above-mentioned first aspect to the above-mentioned sixth aspect.
  • the process of sending information (or signals) in the above method can be understood as a process of outputting information based on instructions of the processor.
  • the processor In outputting information, the processor outputs the information to the transceiver for transmission by the transceiver. After the information is output by the processor, it may also need to undergo other processing before reaching the transceiver.
  • the processor receives incoming information
  • the transceiver receives the information and feeds it into the processor. Furthermore, after the transceiver receives the information, the information may need to undergo other processing before being input to the processor.
  • the above-mentioned processor may be a processor specifically designed to perform these methods, or may be a processor that executes computer instructions in a memory to perform these methods, such as a general-purpose processor.
  • the processor may also be configured to execute a program stored in the memory.
  • the communication device performs the method shown in the above-mentioned first aspect or any possible implementation of the first aspect.
  • the memory is located outside the communication device. In a possible implementation, the memory is located within the above communication device.
  • the processor and the memory may be integrated into one device, that is, the processor and the memory may be integrated together.
  • the communication device further includes a transceiver, which is used to receive signals or send signals, etc.
  • the present application provides another communication device.
  • the communication device includes a processing circuit and an interface circuit.
  • the interface circuit is used to obtain data or output data; the processing circuit is used to perform the above-mentioned first aspect to the above-mentioned sixth aspect. method shown in any aspect.
  • the present application provides a computer-readable storage medium.
  • a computer program is stored in the computer-readable storage medium.
  • the computer program includes program instructions. When executed, the program instructions cause the computer to execute the above-described first aspect to The method shown in any one of the above sixth aspects.
  • the present application provides a computer program product.
  • the computer program product includes a computer program.
  • the computer program includes program instructions. When the program instructions are executed, the computer executes the steps of the above-mentioned first aspect to the above-mentioned sixth aspect. method shown in either aspect.
  • the present application provides a communication system, including the communication device described in the seventh aspect or any possible implementation of the seventh aspect, and the communication device described in the eighth aspect or any possible implementation of the eighth aspect. communication device.
  • the present application provides a communication system, including the communication device described in the ninth aspect or any possible implementation manner of the ninth aspect, and the communication device described in the above tenth aspect or any possible implementation manner of the tenth aspect. communication device.
  • the present application provides a communication system, including the communication device described in the above-mentioned eleventh aspect or any possible implementation of the eleventh aspect, the above-mentioned twelfth aspect or any possible implementation of the twelfth aspect.
  • the present application provides a chip, including a processor and a communication interface.
  • the processor reads instructions stored in a memory through the communication interface and executes any of the above-mentioned first to sixth aspects. The method shown on one hand.
  • embodiments of the present application provide a communication method, which method includes: generating a transmission signal according to a time domain template, where the time domain template is used to define the waveform of the transmission signal, and the time domain template is The lower boundary corresponds to the first value, at least part of the upper boundary of the time domain template in the first time region corresponds to a value of 1, and the upper boundary of the time domain template in the second time region corresponds to the second value, and the The value range of the first value is [-0.2,-0.001], the value range of the second value is [0.001,0.2], the second time area is outside the first time area; send all transmit signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler measurement performance.
  • the value corresponding to the upper boundary of the time domain template in the first sub-region within the first time region is 1, and the time domain template within the first time region
  • the value corresponding to the upper boundary in the second sub-region is 0.3, the first sub-region is [-1.25, 1], the second sub-region is (1, third value], and the third value
  • the value range is (1.0,2.0].
  • the value corresponding to the upper boundary of the time domain template in the first time area is 1, the first time area is [-1.25, third value], and the third time area is [-1.25, third value].
  • the value range of three values is (1.0,2.0].
  • the coordinates of the intersection point of the first time area and the second time area on the time domain template are any of the following: (1.50,0.015), (1.55,0.015) , (1.60,0.015), (1.65,0.015), (1.70,0.015), (1.75,0.015), (1.80,0.015), (1.85,0.015), (2.0,0.015), (1.87,0.01), ( 1.92,0.01), (1.75,0.02).
  • the first value is -0.015
  • the second value is 0.015
  • the waveform of the transmission signal is a Gaussian waveform or a Caesar waveform.
  • embodiments of the present application provide a communication method.
  • the method includes: receiving a transmission signal, the transmission signal conforms to a time domain template, the lower boundary of the time domain template corresponds to a first value, and the time domain At least part of the upper boundary of the template in the first time region corresponds to a value of 1, and the upper boundary of the time domain template in the second time region corresponds to a second value.
  • the range of the first value is [-0.2 ,-0.001]
  • the value range of the second value is [0.001, 0.2]
  • the second time area is outside the first time area; signal processing is performed according to the transmission signal.
  • the value corresponding to the upper boundary of the time domain template in the first sub-region within the first time region is 1, and the time domain template within the first time region
  • the value corresponding to the upper boundary in the second sub-region is 0.3, the first sub-region is [-1.25, 1], the second sub-region is (1, third value], and the third value
  • the value range is (1.0,2.0].
  • the value corresponding to the upper boundary of the time domain template in the first time area is 1, the first time area is [-1.25, third value], and the third time area is [-1.25, third value].
  • the value range of three values is (1.0,2.0].
  • the coordinates of the intersection point of the first time area and the second time area on the time domain template are Any of the following: (1.50,0.015), (1.55,0.015), (1.60,0.015), (1.65,0.015), (1.70,0.015), (1.75,0.015), (1.80,0.015), (1.85, 0.015), (2.0,0.015), (1.87,0.01), (1.92,0.01), (1.75,0.02).
  • the first value is -0.015
  • the second value is 0.015
  • the waveform of the transmission signal is a Gaussian waveform or a Caesar waveform.
  • an embodiment of the present application provides another communication device that has the function of realizing the behavior in the method embodiment of the twenty-first aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the processing module is used to generate a transmission signal according to a time domain template, and the time domain template is used to define the transmission signal waveform, the lower boundary of the time domain template corresponds to the first value, at least part of the upper boundary of the time domain template in the first time region corresponds to a value of 1, and the upper boundary of the time domain template in the second time region corresponds to The boundary corresponds to the second value, the value range of the first value is [-0.2,-0.001], the value range of the second value is [0.001,0.2], and the second time region is in the Outside a time zone; the transceiver module is used to send the transmission signal.
  • the processing module is used to generate a transmission signal according to a time domain template
  • the time domain template is used to define the transmission signal waveform
  • the lower boundary of the time domain template corresponds to the first value
  • at least part of the upper boundary of the time domain template in the first time region corresponds to a value of
  • an embodiment of the present application provides another communication device that has the function of implementing the behavior in the method embodiment of the twenty-second aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the transceiver module is used to receive a transmit signal, the transmit signal conforms to a time domain template, and the lower boundary of the time domain template corresponds to The first value, the value corresponding to at least part of the upper boundary of the time domain template in the first time area is 1, the upper boundary of the time domain template in the second time area corresponds to the second value, the first value
  • the value range of is [-0.2,-0.001], the value range of the second value is [0.001,0.2], the second time area is outside the first time area;
  • the processing module Used to perform signal processing according to the transmitted signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler measurement performance.
  • the present application provides another communication device.
  • the communication device includes a processing circuit and an interface circuit.
  • the interface circuit is used to obtain data or output data; the processing circuit is used to perform the above-mentioned aspects from the twenty-first aspect to the above.
  • the present application provides a computer-readable storage medium.
  • a computer program is stored in the computer-readable storage medium.
  • the computer program includes program instructions. When executed, the program instructions cause the computer to execute the above-mentioned twentieth aspect.
  • the present application provides a computer program product.
  • the computer program product includes a computer program.
  • the computer program includes program instructions. When the program instructions are executed, the computer executes the above-mentioned aspects from the twenty-first aspect to the second aspect. Methods shown in any of the twelve aspects.
  • the present application provides a communication system, including the communication device described in the twenty-third aspect or any possible implementation of the twenty-third aspect, the twenty-fourth aspect or the twenty-fourth aspect.
  • embodiments of the present application provide a communication method.
  • the method includes: generating a transmission signal according to a time domain template, where the time domain template is used to define the waveform of the transmission signal, and the time domain template is The lower boundary corresponds to the first value, the time domain template is an axially symmetrical figure in the first time area, and the upper boundary of the time domain template in the second time area outside the first time area corresponds to the second value.
  • the first time region includes a third time region, a fourth time region, and a fifth time region in chronological order, and the upper boundary of the time domain template in the third time region corresponds to the third value, so
  • the value corresponding to the upper boundary of the time domain template in the fourth time region is 1
  • the upper boundary of the time domain template in the fifth time region corresponds to the third value
  • the value of the first value The value range is [-0.2,-0.001]
  • the second value range is [0.001,0.2]
  • the third value is less than 1; send the transmission signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler measurement performance.
  • the length of the first time region ranges from [1.25, 1.75].
  • the length of the fourth time region ranges from [0.45, 1.2].
  • the third value ranges from [0.1, 0.9], and the third value is greater than the second value.
  • the coordinates of an intersection point between the first time area and the second time area on the time domain template are any of the following: (1.37,0.3), (1.4,0.3 ),(1.42,0.3),(1.45,0.3),(1.47,0.3).
  • the coordinates of an intersection point between the fourth time area and the fifth time area on the time domain template are any of the following: (0.88,0.3), (0.85,0.3 ),(0.83,0.3),(0.8,0.3),(0.78,0.3).
  • the first value and the second value are opposite numbers of each other.
  • the waveform of the transmission signal is a Gaussian waveform or a Caesar waveform.
  • embodiments of the present application provide a communication method.
  • the method includes: receiving a transmission signal, the transmission signal conforms to a time domain template, the lower boundary of the time domain template corresponds to the first value, and the time domain template It is an axially symmetrical figure in the first time area.
  • the upper boundary of the time domain template in the second time area outside the first time area corresponds to the second value.
  • the first time area is sequentially in chronological order. It includes a third time area, a fourth time area, and a fifth time area.
  • the upper boundary of the time domain template in the third time area corresponds to the third value.
  • the time domain template is within the fourth time area.
  • the value corresponding to the upper boundary of is 1, the upper boundary of the time domain template in the fifth time region corresponds to the third value, and the value range of the first value is [-0.2,-0.001], The value range of the second value is [0.001, 0.2], and the third value is less than 1; signal processing is performed according to the transmitted signal.
  • Possible implementation methods of the communication device of the thirtieth aspect may be referred to various possible implementation methods of the twenty-ninth aspect.
  • an embodiment of the present application provides another communication device, which has the function of realizing the behavior in the method embodiment of the twenty-ninth aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the processing module is used to generate a transmission signal according to a time domain template, and the time domain template is used to define the transmission signal Waveform, the lower boundary of the time domain template corresponds to the first value, the time domain template is an axially symmetrical figure in the first time area, and the time domain template is in a second time area outside the first time area.
  • the upper boundary within corresponds to the second value
  • the first time area includes a third time area, a fourth time area, and a fifth time area in chronological order
  • the time domain template is within the third time area.
  • the upper boundary corresponds to the third value.
  • the value corresponding to the upper boundary of the time domain template in the fourth time area is 1.
  • the upper boundary of the time domain template in the fifth time area corresponds to the third value.
  • the value range of the first value is [-0.2,-0.001]
  • the value range of the second value is [0.001,0.2]
  • the third value is less than 1; the transceiver module uses to send the transmission signal.
  • an embodiment of the present application provides another communication device, which has the function of realizing the behavior in the above-mentioned method embodiment of the thirtieth aspect.
  • the communication device may be a communication device, a component of the communication device (such as a processor, a chip, or a chip system, etc.), or a logic module or software that can realize all or part of the functions of the communication device.
  • the functions of the communication device can be implemented by hardware, or by hardware executing corresponding software.
  • the hardware or software includes one or more modules or units corresponding to the above functions.
  • the communication device includes a processing module and a transceiver module, wherein: the transceiver module is used to receive a transmission signal, the transmission signal conforms to a time domain template, and the lower boundary of the time domain template corresponds to The first value, the time domain template is an axially symmetrical figure in the first time area, the upper boundary of the time domain template in the second time area outside the first time area corresponds to the second value, the The first time region includes a third time region, a fourth time region, and a fifth time region in order of time. The upper boundary of the time domain template in the third time region corresponds to the third value.
  • the time domain The value corresponding to the upper boundary of the template in the fourth time region is 1, the upper boundary of the time domain template in the fifth time region corresponds to the third value, and the value range of the first value is [-0.2,-0.001], the second value ranges from [0.001, 0.2], and the third value is less than 1; the processing module is used to perform signal processing according to the transmitted signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler measurement performance.
  • the present application provides another communication device.
  • the communication device includes a processing circuit and an interface circuit.
  • the interface circuit is used to obtain data or output data; the processing circuit is used to perform the above-mentioned twenty-ninth aspect or the above-mentioned.
  • the method shown in the thirtieth aspect is used to perform the above-mentioned twenty-ninth aspect or the above-mentioned.
  • the present application provides a computer-readable storage medium.
  • a computer program is stored in the computer-readable storage medium.
  • the computer program includes program instructions. When the program instructions are executed, the computer executes the above-mentioned twentieth aspect. Methods shown in the ninth aspect or the thirtieth aspect above.
  • the present application provides a computer program product.
  • the computer program product includes a computer program.
  • the computer program includes program instructions. When executed, the program instructions cause the computer to perform the above-mentioned aspect 29 or the above-mentioned third aspect. Methods shown in ten aspects.
  • the present application provides a communication system, including the communication device described in the thirty-first aspect or any possible implementation of the thirty-first aspect, the thirty-second aspect or the thirty-second aspect.
  • Figure 1 is an example of a compliant pulse in the prior art
  • Figure 2 is a transmission spectrum template for channel 4 in the prior art
  • Figure 3 is a schematic diagram of a time domain template that the waveform of the UWB signal used for ranging needs to meet in the prior art
  • Figure 4A is an example of a waveform of a transmission signal provided by an embodiment of the present application.
  • Figure 4B is an example of an autocorrelation function provided by the embodiment of the present application.
  • Figure 4C is a schematic diagram of a ranging resolution provided by an embodiment of the present application.
  • Figure 4D is a schematic diagram of a peak side lobe ratio provided by an embodiment of the present application.
  • Figure 4E is a schematic diagram of a signal power spectrum and a power spectrum template provided by an embodiment of the present application.
  • Figure 5 is an example of an application scenario provided by this application.
  • Figure 6A is a schematic diagram comparing the waveforms of a transmit signal on the LOS path and the reflection path provided by an embodiment of the present application;
  • Figure 6B is a schematic diagram of the superposition of the waveform of the transmit signal on the LOS path and the waveform on the reflection path provided by the embodiment of the present application;
  • Figure 7A is a schematic diagram of a mono-static sensing mode provided by an embodiment of the present application.
  • Figure 7B is a schematic diagram of a bi-static sensing mode provided by an embodiment of the present application.
  • Figure 7C is a schematic diagram of a muti-static sensing mode provided by an embodiment of the present application.
  • Figure 8A is a schematic diagram of the relationship between ranging resolution and PSLR provided by an embodiment of the present application.
  • Figure 8B is a schematic diagram of the relationship between PSLR and peak side lobe ratio provided by an embodiment of the present application.
  • Figure 8C is a comparative schematic diagram of an optimal waveform provided by the embodiment of the present application.
  • Figure 9A is an example of a time domain template provided by the embodiment of the present application.
  • Figures 9B to 9P are examples of different waveforms provided by embodiments of the present application.
  • Figure 10 is an interaction flow chart of a communication method provided by an embodiment of the present application.
  • Figure 11 is an interaction flow chart of another communication method provided by an embodiment of the present application.
  • Figure 12 is a schematic structural diagram of a communication device 1200 provided by an embodiment of the present application.
  • Figure 13 is a schematic structural diagram of another communication device 130 provided by an embodiment of the present application.
  • Figure 14 is a schematic structural diagram of another communication device 140 provided by an embodiment of the present application.
  • Figure 15 is an example of a time domain template provided by the embodiment of the present application.
  • Figures 16A and 16B are examples of time domain templates provided by embodiments of the present application.
  • Figures 17A to 17Z are examples of time domain templates provided by embodiments of the present application.
  • Figures 18A to 18L are examples of time domain templates provided by embodiments of the present application.
  • Figure 19 is an example of time domain template three provided by the embodiment of the present application.
  • Figure 20 is another example of time domain template three provided by the embodiment of the present application.
  • Figures 21A to 21I are examples of time domain templates provided by embodiments of the present application.
  • an embodiment means that a particular feature, structure or characteristic described in connection with the embodiment may be included in at least one embodiment of the present application.
  • the appearances of this phrase in various places in the specification are not necessarily all referring to the same embodiment, nor are separate or alternative embodiments mutually exclusive of other embodiments. Those skilled in the art will understand, both explicitly and implicitly, that the embodiments described herein may be combined with other embodiments.
  • a corresponds to B means that A and B have a corresponding relationship, and B can be determined based on A.
  • determining (or generating) B according to (or based on) A does not mean only determining (or generating) B according to (or based on) A. It can also be determined according to (or based on) A and/or other information. or generate)B.
  • the impulse response of UWB baseband is specified.
  • the transmitted baseband waveform is p(t)
  • a reference signal r(t) is specified.
  • the cross-correlation between the transmitted signal p(t) and the reference signal r(t) can be written as:
  • Er and Ep represent the energy of r(t) and p(t) respectively.
  • p * (t) represents the conjugate of p(t).
  • Re means taking the real part of the signal.
  • r(t) is a root raised cosine pulse, its mathematical definition is as follows:
  • Table 1-1 shows the Tp corresponding to different channels. Taking the third row in Table 1-1 as an example, the Tp corresponding to the channel number 7 is 0.92ns.
  • the constraints that the transmitted signal (UWB signal) needs to meet in the time domain include: the main lobe peak value of
  • the main lobe of a waveform refers to the peak or trough with the largest amplitude in the waveform, and the side lobes of the waveform refer to the peak or trough with a non-maximum amplitude in the waveform.
  • the main lobe may be a peak or a trough. Side lobes may be peaks or troughs.
  • Table 1-2 shows that the main lobe of UWB signals sent over different channels requires a length of time greater than 0.8.
  • the first column represents the channel number (channel number)
  • the second column represents the pulse duration (pulse duration) Tp corresponding to different channels
  • the third column represents the main lobe width (main lobe width) of the UWB signal. constraint, that is, the main lobe needs a time length greater than 0.8.
  • the pulse duration corresponding to channel 7 is 0.92ns
  • the main lobe of the UWB signal carried on channel 7 needs to be greater than 0.8 for a time length of 0.2ns.
  • the UWB signal may be called UWB pulse (UWB pluse), and the transmitted signal refers to the UWB signal.
  • Figure 1 is an example of a compliant pulse in the prior art.
  • the horizontal axis represents time (time) in nanoseconds (ns);
  • the leftmost waveform represents an example of p(t) that satisfies the constraints in the time domain, that is, UWB pulse (UWB pluse);
  • the middle waveform Represents the reference signal r(t), that is, UWB reference pulse (UWB reference pulse);
  • the rightmost waveform represents the waveform of
  • the transmit power of the transmitted signal needs to meet the following template constraints (taking channel 4 as an example): in the range of 0.65/T p ⁇
  • FIG. 2 shows a transmit spectrum mask for channel 4 (ransmit spectrum mask for band 4) in the prior art.
  • the horizontal axis is frequency in GHz
  • the vertical axis is power spectral density in dB.
  • the transmit spectrum template shown in FIG. 2 for channel 4 can be considered as the boundary of the curve carrying the power spectral density of the transmit signal of channel 4.
  • FIG. 3 is a schematic diagram of a time domain template that the waveform of the UWB signal used for ranging needs to meet in the prior art.
  • the horizontal axis represents the time unit T p and the vertical axis represents the relative amplitude.
  • Figure 3 shows a waveform of a UWB signal that satisfies the time domain template. The side lobes on the left side of the main lobe of this waveform are almost zero, while the side lobes on the right side of the main lobe are higher.
  • the purpose of designing the time domain template is to reduce the impact of non-line of sight (NLOS) paths on LOS paths and improve the detection accuracy of LOS paths.
  • NLOS non-line of sight
  • the transmitted baseband waveform is p(t), such as the UWB signal transmitted by the transmitter.
  • the autocorrelation function of the transmitted signal p(t) can be written in the following form:
  • FIG. 4A is an example of a waveform of a transmission signal provided by an embodiment of the present application.
  • the horizontal axis represents time (unit is nanosecond), and the vertical axis represents amplitude.
  • Figure 4B is an example of an autocorrelation function provided by an embodiment of the present application. Referring to Figure 4B, the horizontal axis represents time (unit is nanosecond), and the vertical axis represents amplitude.
  • the autocorrelation function in Figure 4B is the autocorrelation function corresponding to the waveform in Figure 4A.
  • Ranging resolution is defined as the 3dB width of the main beam of the signal autocorrelation function.
  • the signal autocorrelation function refers to the autocorrelation function of the transmitted signal (i.e. UWB signal).
  • the main beam width is inversely proportional to the bandwidth. The wider the bandwidth, the narrower the main beam width.
  • FIG. 4C is a schematic diagram of a ranging resolution provided by an embodiment of the present application.
  • the ranging resolution shown in Figure 4C is the ranging resolution corresponding to the autocorrelation function in Figure 4B, that is, the 3dB width of the main beam of the autocorrelation function. Referring to Figure 4C, the horizontal axis represents time (unit is nanosecond), and the vertical axis represents amplitude.
  • PSLR Peak side lobe ratio is defined as the ratio of the peak value of the main lobe of the autocorrelation function to the highest side lobe. The larger the ratio, the smaller the side lobe fluctuations, which is more conducive to improving the perception performance.
  • Figure 4D is a schematic diagram of a peak side lobe ratio provided by an embodiment of the present application. Referring to Figure 4D, the horizontal axis represents time (unit is nanosecond), the vertical axis represents amplitude, and the arrow represents PSLR.
  • Spectral efficiency is defined as the ratio of the in-band integral of the spectrum corresponding to the waveform of the transmitted signal to the in-band integral of the spectrum template. The higher the spectrum efficiency, the more conducive to increasing the transmission power.
  • Spectral efficiency ⁇ can be expressed in the following form:
  • FIG. 4E is a schematic diagram of a signal power spectrum and a power spectrum template provided by an embodiment of the present application.
  • the curve represents S p (f)
  • staircase shape The polyline represents S(f)
  • the horizontal axis is frequency (frequency) in Hz
  • the vertical axis is power spectral density (PSD).
  • FIG. 6A is a schematic diagram comparing the waveforms of a transmit signal on the LOS path and the reflection path provided by an embodiment of the present application.
  • FIG. 6B is a schematic diagram illustrating the superposition of the waveform of a transmit signal on the LOS path and the waveform on the reflection path provided by an embodiment of the present application.
  • the horizontal axis is time (time), the unit is second (second), and the vertical axis is amplitude (amplitude).
  • the coordinates of the peak of the signal on the reflection path in Figure 6A are (8.013e -9 ,0.251), and the coordinates of the peak of the signal on the reflection path in Figure 6B are (8.514e -9 ,0.3266). It can be seen from Figure 6A and Figure 6B that the position and intensity of the signal on the reflection path are affected by the LOS path.
  • the waveform shown in Figure 6A is beneficial to ranging.
  • the focus is on the measurement accuracy of the reflection path.
  • this waveform is not conducive to sensing applications. Therefore, it is necessary to design a UWB signal waveform with strong ranging performance and sensing performance.
  • This application comprehensively considers ranging performance and sensing performance, and designs a new waveform. Using this waveform can reduce the impact of waveform side lobes on sensing performance, thereby improving sensing performance while taking into account the needs of ranging applications.
  • the main principle of this application is to further define the time domain template that the waveform of the UWB signal needs to meet.
  • this application provides a new time domain template, which is a further limitation of the time domain template shown in Figure 3. It can be understood that the waveform that satisfies (or conforms to) the new time domain template provided by this application must satisfy the time domain template shown in Figure 3.
  • this application also provides several criteria that the waveform of UWB signals needs to meet to guide waveform design and selection and improve sensing performance.
  • the communication solution provided by this application can work in mono-static sensing mode, bi-static sensing mode and multi-static sensing mode. The following is a brief introduction to these three perception modes.
  • FIG. 7A is a schematic diagram of a mono-static sensing mode provided by an embodiment of the present application.
  • the transmitter and the receiver are deployed at the same location, such as on the same communication device.
  • the transmitter transmits a signal, and the transmitted signal is reflected by the target (such as the human body in Figure 7A) and is then reflected by the receiver.
  • the transmitter can infer the distance and speed information of the target (human body) from the transmitter/receiver.
  • the communication device is both a sending end and a receiving end. In this application, the transmitting end and the transmitting end can be replaced with each other.
  • FIG. 7B is a schematic diagram of a bi-static sensing mode provided by an embodiment of the present application.
  • the transmitter and receiver are spatially separated, that is, the transmitter and receiver are deployed at different locations, the transmitter transmits a signal, and the transmit signal (i.e., the signal transmitted by the transmitter) After being reflected by the target (such as the human body in Figure 7B), it is received by the receiver.
  • the receiver can infer the transmitter-target- The length of the path to the receiver and how the length of that path changes over time.
  • the transmitter can be regarded as the sending end where the transmitter is deployed, and the receiver can be regarded as the receiving end where the receiver is deployed.
  • the sending and receiving parties i.e., the transmitter and the receiver
  • the receiver knows the transmitted signal.
  • the receiver analyzes the difference between it and the agreed transmitted signal. Extract delay difference information.
  • Figure 7C is a schematic diagram of a muti-static sensing mode provided by an embodiment of the present application.
  • the transmitter and the receiver are spatially separated, that is, the transmitter and the receiver are deployed at different locations, the transmitter transmits a signal, and the transmit signal (i.e., the signal transmitted by the transmitter) After being reflected by the target (such as the human body in Figure 7C), it is received by multiple receivers (Figure 7C only shows receiver 1 and receiver 2).
  • the transmitter can be regarded as the sending end where the transmitter is deployed, and the receiver can be regarded as the receiving end where the receiver is deployed.
  • FIG. 8A is a schematic diagram of the relationship between ranging resolution and PSLR provided by an embodiment of the present application.
  • the horizontal axis represents the ranging resolution.
  • the unit of the horizontal axis is ns.
  • the vertical axis represents PSLR.
  • FIG. 8B is a schematic diagram of the relationship between PSLR and peak sidelobe ratio provided by an embodiment of the present application.
  • the horizontal axis represents PSLR
  • the vertical axis represents the peak side-lobe ratio
  • 801 indicates (corresponding to the circle) the relationship between the PSLR and the peak side-lobe ratio after adding the 7th-order Butterworth waveform and the Gaussian window
  • 802 indicates (corresponding to the circle) The relationship between PSLR and peak sidelobe ratio after adding Gaussian window to the 8th-order Butterworth waveform in star shape. It can be seen from Figure 8A and Figure 8B that these three indicators influence each other, and the three indicators cannot reach the optimum at the same time, that is, the ranging resolution, peak side lobe ratio, and spectrum efficiency cannot reach the optimum at the same time.
  • FIG. 8A is a schematic comparison diagram of an optimal waveform provided by an embodiment of the present application.
  • criterion 1 the waveform of the UWB signal needs to meet the following criteria at the same time (hereinafter referred to as criterion 1):
  • the ranging resolution is no worse than the 8th order Butterworth waveform
  • PSLR in dB
  • the value range of PSLR can be set according to actual needs.
  • the PSLR (measured in dB) needs to be more than 39% better than the existing waveform (19.97dB).
  • the first threshold can be set according to actual needs.
  • the first threshold can be 35%, 36%, 38%, 40%, 42%, 44%, 45%, etc.
  • the existing waveform refers to the eighth-order Butterworth waveform.
  • UWB has different channel bandwidths, including 499.2MHz, 1331.2MHz, 1081.6MHz, and 1354.97MHz.
  • the resolution of the eighth-order Butterworth waveform is different, and the PSLR remains unchanged.
  • the ranging resolution is no worse than the eighth-order Butterworth waveform for channels with the same bandwidth.
  • the new waveform the ranging resolution of the UWB signal waveform (hereinafter referred to as the new waveform) provided by this application is no worse than the eighth-order Butterworth waveform. It is understandable that for channels with different bandwidths, the above four criteria remain unchanged.
  • criterion 2 the waveform of UWB signals needs to meet the following criteria at the same time (hereinafter referred to as criterion 2):
  • the range of ranging resolution is 0.875Tp ⁇ Tp;
  • PSLR in dB
  • the spectrum efficiency is higher than the second threshold
  • B represents the bandwidth of the channel occupied by the UWB signal.
  • the value range of the ranging resolution can be set according to actual needs.
  • the ranging resolution of the UWB signal waveform provided by this application is not worse than 10% of the 8th-order Butterworth waveform, that is, the ranging resolution of the new waveform is the ranging resolution of the 8th-order Butterworth waveform. More than 90.
  • the value range of PSLR can be set according to actual needs.
  • the PSLR (measured in dB) needs to be more than 100% better than the existing waveform (28.74dB).
  • the second threshold can be set according to actual needs.
  • the second threshold can be 35%, 36%, 38%, 40%, 42%, 44%, 45%, etc.
  • UWB has different channel bandwidths, including 499.2MHz, 1331.2MHz, 1081.6MHz, and 1354.97MHz.
  • the resolution of the same waveform is different, but the PSLR remains unchanged. Therefore, for different channels, different ranging resolutions can be set for new waveforms. For channels with different bandwidths, the above four criteria remain unchanged.
  • this application proposes that the waveform of the UWB signal needs to meet criterion 1 or criterion 2.
  • Criterion 1 and Criterion 2 are only examples, and should not be understood to mean that the time domain template or the waveform of the UWB signal can only be designed based on these two criteria. That is to say, those skilled in the art design based on other similar criteria (while considering the ranging performance and sensing performance of the waveform)
  • the waveform of the UWB signal also falls within the scope of protection of this application.
  • a new time domain template is determined according to criterion 1 or criterion 2, so that the new time domain template is used to generate a UWB signal that takes into account both ranging performance and sensing performance.
  • the transmitter can generate a transmission signal based on a new time domain template to ensure the ranging performance and sensing performance of the transmission signal.
  • FIG. 9A is an example of a time domain template provided by an embodiment of the present application.
  • the time domain template shown in FIG. 9A can be regarded as a possible time domain template determined according to the above criterion 1 or criterion 2.
  • Waveforms that meet the constraints of the time domain template provided by this application (hereinafter referred to as time domain template 1) have better ranging resolution and PSLR performance.
  • a waveform that satisfies the constraints of the time domain template means that the amplitude of the highest peak of the waveform is scaled to 1 and is included in the area defined by the boundary of the time domain template. Scaling the amplitude of the highest peak of the waveform to 1 means scaling the waveform as a whole and scaling the amplitude of the highest peak of the waveform to 1.
  • time domain template 1 The upper boundary of the time domain template (hereinafter referred to as time domain template 1) provided by the embodiment of the present application includes the line segment indicated by 901, The line segment indicated by 902 and the line segment indicated by 903.
  • the lower boundary of time domain template 1 includes the line segment indicated by 904 and the line segment indicated by 905.
  • the coordinate of the horizontal axis corresponding to the line segment indicated by 901 is less than -1.25.
  • the horizontal axis corresponding to the line segment indicated by 902 The range is [-1.25,1], the coordinate of the horizontal axis corresponding to the line segment indicated by 903 is greater than 1, the coordinate of the horizontal axis corresponding to the line segment indicated by 904 is less than 0, and the coordinate of the horizontal axis corresponding to the line segment indicated by 905 is greater than or equal to 0 ;
  • the coordinates of point A are (-1.25, 0.015), the coordinates of point B are (0,-0.2), the coordinates of point D are (1,0.2), the coordinates of point F are (2,0.015), and point C represents The peak point of the main lobe, point D represents the valley point of the first side lobe, the values of the ordinates of points H and G are both reference values, and the difference between the abscissas corresponding to points H and G is the first side lobe.
  • the corresponding width of the lobe; the coordinates of the horizontal axis corresponding to the first time unit are [-1.25,1].
  • the first time unit corresponds to the line segment indicated by 902, that is, the time between point A and point D; the second time unit The coordinates of the corresponding horizontal axis are greater than 1.25, and the second time unit corresponds to the line segment indicated by 903, that is, the time after point D; the coordinates of the horizontal axis corresponding to the third time unit are greater than 0, and the third time unit corresponds to the line segment indicated by 905.
  • the line segment that is, the time after point B; the coordinate of the horizontal axis corresponding to the fifth time unit is less than -1.25, and the fifth time unit corresponds to the line segment indicated by 901, that is, the time before point A; the horizontal axis corresponding to the sixth time unit The coordinate of the axis is less than 0, and the sixth time unit corresponds to the line segment indicated by 904, that is, the time before point B.
  • the upper boundary of time domain template 1 is a line segment with an ordinate of 0.015, that is, the corresponding value of the upper boundary is 0.015.
  • the upper boundary of time domain template 1 is all a line segment with an ordinate of 1.
  • the line segment of that is, the values corresponding to the upper boundary are all 1; in the second time unit, the upper boundary of the time domain template 1 is the first value (for example, 0.2), that is, in the second time unit, the upper boundary of the time domain template 1 is The ordinate is the line segment with the first value, which is less than 0.3; the value corresponding to the lower boundary of the time domain template 1 in the third time unit is the second value, that is, the lower boundary of the time domain template 1 in the third time unit
  • the boundary is a line segment whose ordinate is a second value, and the second value (for example, -0.2) is greater than -0.5.
  • the reference value can be 0, 0.01, 0.015, 0.02, etc.
  • the lower boundary in the third time unit includes boundary 1 and boundary 2, where boundary 1 is a line segment whose ordinate is the second value, and boundary 2 is a line segment whose ordinate is the third value.
  • the third time unit includes the fourth time unit and the seventh time unit.
  • the coordinates of the horizontal axis corresponding to the fourth time unit are [0,2].
  • the coordinates of the horizontal axis corresponding to the seventh time unit are greater than 2.
  • the coordinates of the horizontal axis corresponding to the fourth time unit are greater than 2.
  • the lower boundary within the unit is a line segment whose ordinate is the second value
  • the lower boundary within the seventh time unit is a line segment whose ordinate is the third value.
  • the second value is less than the third value.
  • the value range of the second value may be (-0.3,-0.15].
  • the value range of the third value may be (-0.3,-0.05].
  • the second value is -0.2 and the third value is -0.1.
  • the second value is -0.15 and the third value is -0.10.
  • the second value is -0.2 and the third value is -0.05.
  • time domain template 1 The boundary of the time domain template 1 was described previously in conjunction with Figure 9A.
  • some possible waveforms that satisfy the constraints of time domain template 1 meet the following conditions: when the peak value of the main lobe of the waveform is scaled to 1, the first side lobe of the waveform (adjacent to the main lobe and located at the main lobe) The peak value on the right side of the waveform belongs to the first peak range, and the peak value of the second side lobe of the waveform belongs to the second peak range.
  • the second side lobe may be the side lobe with the highest peak value on the right side of the first side lobe in the waveform.
  • the peak value of the main lobe refers to the peak value of the crest corresponding to the main lobe; if the main lobe is a trough, the peak value of the main lobe refers to the absolute value of the trough value of the trough corresponding to the main lobe.
  • the side lobe is a wave peak, the peak value of the side lobe refers to the peak value of the wave peak corresponding to the side lobe; if the side lobe is a wave valley, the peak value of the side lobe refers to the absolute value of the valley value of the wave valley corresponding to the side lobe.
  • the waveform shown in Figure 9A is an example of a waveform that satisfies the constraints of Time Domain Template 1.
  • the lower boundary within the third time unit corresponds to the first peak range
  • the upper and lower boundaries within the fourth time unit correspond to the second peak range.
  • the fact that the peak value of the second side lobe of the above waveform belongs to the second peak range can be understood to mean that the peak value of any side lobe to the right of the first side lobe belongs to the second peak range.
  • the peak value of the second side lobe of the above waveform belonging to the second peak range can be replaced by: the peak value of any peak on the right side of the first side lobe is less than the first value, and the valley value of any wave valley is greater than the second value.
  • time domain template shown in FIG. 9A is only an example of the time domain template provided by this application.
  • Other similar time domain templates time domain templates that can take into account the ranging performance and sensing performance of the waveform also fall within the scope of protection of this application.
  • this application provides two corresponding waveform sets.
  • the waveforms in the first waveform set tend to range measurement resolution, and the waveforms in the second waveform set tend to Waveforms tend to be PSLR.
  • the first waveform set includes the following waveforms: the waveform shown in FIG. 9B and the waveform shown in FIG. 9C.
  • the basic waveform of the waveform shown in Figure 9B is 6th order Butterworth
  • the window function type is Kaiser window
  • the window parameter is 1.35.
  • the basic waveform of the waveform shown in Figure 9C is the 6th order Butterworth
  • the window function type is Gaussian window
  • the window parameter is 1.25*Tp.
  • the second waveform set includes the following waveforms: the waveforms shown in FIG. 9D to FIG. 9P.
  • the basic waveform of the waveform shown in Figure 9E is 9th order Butterworth, the window function type is Kaiser window, and the window parameter is 4.05.
  • the basic waveform of the waveform shown in Figure 9F is the 10th order Butterworth, the window function type is the Kaiser window, and the window parameter is 4.4.
  • the basic waveform of the waveform shown in Figure 9G is the 10th order Butterworth, the window function type is the Blackman window, and the window parameter is 0.301.
  • the basic waveform of the waveform shown in Figure 9H is the 11th order Butterworth, the window function type is the Kaiser window, and the window parameter is 4.75.
  • the basic waveform of the waveform shown in Figure 9I is the 11th order Butterworth, the window function type is the Blackman window, and the window parameter is 0.301.
  • the basic waveform of the waveform shown in Figure 9J is the 12th order Butterworth, the window function type is the Kaiser window, and the window parameter is 4.35.
  • the basic waveform of the waveform shown in Figure 9K is the 12th order Butterworth, the window function type is the Blackman window, and the window parameter is 0.301.
  • the new time domain template provided by this application and the waveform of the UWB signal that can take into account both ranging performance and perception performance were introduced previously.
  • the communication solutions provided by this application are introduced below.
  • the communication solution provided by this application is suitable for ranging scenarios and sensing scenarios.
  • the wireless communication system can comply with the wireless communication standards of the third generation partnership project (3GPP), and can also comply with other wireless communication standards, such as , a wireless communication standard of the Institute of Electrical and Electronics Engineers (IEEE) 802 series (for example, 802.11, 802.15, or 802.20).
  • IEEE Institute of Electrical and Electronics Engineers
  • the communication solution provided by this application is applied to wireless LAN systems that support IEEE802.11ax next-generation Wi-Fi protocols, such as 802.11be, Wi-Fi7 or EHT, and 802.11 series protocols such as 802.11be next-generation, Wi-Fi8, etc.
  • Figure 10 is an interaction flow chart of a communication method provided by an embodiment of the present application. As shown in Figure 10, the method includes:
  • the sending end generates a transmission signal.
  • the transmitting end refers to a communication device that can perform ranging, angle measurement, or Doppler measurement by transmitting UWB signals.
  • vehicle-mounted equipment car keys, terminal equipment (including mobile phones, computers, tablets, watches, refrigerators, air conditioners, etc.) that can emit UWB signals, UWB tags (installed on luggage, schoolbags, keychains, etc.), etc.
  • UWB tags installed on luggage, schoolbags, keychains, etc.
  • the receiving end refers to a communication device that can receive UWB signals.
  • vehicle-mounted devices For example, vehicle-mounted devices, car keys, terminal devices (including mobile phones, computers, tablets, watches, refrigerators, air conditioners, etc.) that can receive UWB signals, and UWB tags (installed on luggage, schoolbags, keychains, etc.) wait.
  • terminal devices including mobile phones, computers, tablets, watches, refrigerators, air conditioners, etc.
  • UWB tags installed on luggage, schoolbags, keychains, etc.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, and the first peak range may be [0.15, 0.3).
  • the first peak range is any one of [0.15,0.2], [0.15,0.25], [0.18,0.2], [0.20,0.25], etc.
  • the first side lobe of the transmitted signal refers to a side lobe located on the right side of the main lobe of the transmitted signal and adjacent to the main lobe.
  • the main lobe of a waveform refers to the peak or valley with the largest amplitude in the waveform
  • the side lobe of the waveform refers to the peak or valley with a non-maximum amplitude in the waveform.
  • the main lobe may be a crest or a trough.
  • Side lobes may be peaks or troughs.
  • the waveform of the transmitted signal may be any one of the above-mentioned first waveform set or the above-mentioned second waveform set.
  • the main lobe of the transmitted signal is the peak
  • the first side lobe is the trough.
  • the peak value of the first side lobe belonging to the first peak range refers to the trough value of the trough corresponding to the first side lobe.
  • the absolute value of falls within the first peak range.
  • the main lobe of the transmitted signal is a trough and the first side lobe is a peak; the peak value of the first side lobe belonging to the first peak range means that the peak value of the wave peak corresponding to the first side lobe belongs to the first peak range.
  • the peak value of the second side lobe of the transmitted signal belongs to a second peak range
  • the second peak range may be [0.15, 0.3).
  • the second peak range is any one of [0.15,0.2], [0.15,0.25], [0.18,0.2], [0.20,0.25], etc.
  • the second side lobe may be the side lobe with the highest peak value on the right side of the first side lobe of the transmitted signal.
  • the second side lobe can be a peak or a trough. If the second side lobe is a peak, the peak value of the second side lobe belonging to the second peak range means that the peak value of the wave peak corresponding to the second side lobe belongs to the second peak range.
  • the peak value of the second side lobe belongs to the second peak range means that the absolute value of the trough corresponding to the second side lobe belongs to the second peak range; if the second side lobe is a peak, the The peak value of the two side lobes belonging to the second peak range means that the peak value of the wave peak corresponding to the second side lobe belongs to the second peak range. In this implementation, the peak value of the second side lobe belongs to the second peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight.
  • the peak value of any wave peak on the right side of the first side lobe is less than the first value, and the valley value of any wave trough is greater than the second value.
  • the first value is a positive number and the second value is a negative number.
  • the first value is 0.2 and the second value is -0.2 or -0.1.
  • the peak value of any wave peak on the right side of the first side lobe is less than the first value, and the valley value of any wave valley is greater than the second value; this can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight.
  • the corresponding width (ie, the time length) of the main lobe is the distance between two points on the main lobe with an amplitude of value a, and the value a can be 0, 0.1, 0.2, 0.3, 0.5, etc., this application does not limit it; if the main lobe of the waveform is a trough, the width corresponding to the main lobe is the distance between two points on the main lobe whose amplitude is the value b, the value b can be 0, -0.1, -0.2, -0.3, -0.5, etc., and is not limited in this application.
  • the width (i.e., the time length) corresponding to the main lobe is the time length between point 1 with the amplitude c and point 2 with the amplitude d on the main lobe. , that is, the difference between the corresponding abscissas of the two points.
  • Point 1 is located on the left side of the peak point (that is, the point with the largest amplitude), and point 2 is located on the right side of the peak point; if the main lobe of the waveform is the trough , then the corresponding width of the main lobe (that is, the time length) is the time length between point 3 with the amplitude e and point 4 with the amplitude f on the main lobe, that is, the corresponding abscissas of these two points. The difference between them, point 3 is located on the left side of the valley point (that is, the point with the largest amplitude on the wave crest), and point 4 is located on the right side of the valley point. The value c is different from the value d.
  • the value c can be 0.015, 0.0, 0.02, etc.
  • the value d can be 0.0, -0.015, 0.015, etc.
  • the value e is different from the value f.
  • the value e can be -0.015, 0.0, -0.02, etc.
  • the value f can be 0.0, -0.015, 0.015, etc.
  • the waveform of the transmitted signal is the waveform in Figure 9A
  • the corresponding width of the main lobe is the first time unit indicated by 901.
  • the width corresponding to the main lobe is the distance between two points with an amplitude of 0 on the wave peak corresponding to the main lobe.
  • the waveforms in these two examples are normalized waveforms.
  • the absolute value of the difference between the width corresponding to the first side lobe and the width corresponding to the main lobe is less than a width threshold.
  • the width threshold can be 5%, 8%, 10%, 15%, 20%, etc. of the width corresponding to the main lobe.
  • the embodiments of this application are not limiting.
  • the corresponding width of the first side lobe may be greater than the corresponding width of the main lobe, or may be smaller than the corresponding width of the main lobe.
  • the width corresponding to any side lobe is the distance between two points on the wave peak corresponding to any side lobe whose amplitude is the value a; if any side lobe on the waveform If one side lobe is a trough, then the corresponding width of any side lobe is the distance between two points on the trough corresponding to any side lobe whose amplitude is the value b.
  • the corresponding width (i.e., the length of time) of the side lobe is between point 7 with the amplitude c and point 8 with the amplitude d on the corresponding wave peak.
  • the length of time that is, the difference between the abscissas corresponding to the two points, point 7 is located on the left side of the peak point (i.e. the point with the largest amplitude), and point 8 is located on the right side of the peak point; if any part of the waveform If a side lobe is a trough, then the width (i.e., the length of time) corresponding to the side lobe is the time length between point 9 with the amplitude e and point 10 with the amplitude f on the corresponding trough, that is, these two
  • point 9 is located on the left side of the valley point (that is, the point with the largest amplitude on the wave trough), and point 10 is located on the right side of the valley point.
  • the corresponding width of the first side lobe (adjacent to the main lobe) on the right side of the main lobe of the waveform can be between two points on the valley corresponding to the first side lobe whose amplitude is the value a.
  • the length of time can also be the length of time between the time corresponding to the peak point of the wave peak corresponding to the main lobe and the time corresponding to the point on the wave trough corresponding to the first side lobe whose amplitude is the value a, or it can also have other meanings.
  • the transmitted signal does not have side lobes, that is, there is only a main lobe. In this case, there is no need to consider side lobes.
  • a possible implementation of step 1002 is as follows: generate the transmission signal according to the time domain template.
  • the time domain template is used to define the peak value of the first side lobe of the transmitted signal.
  • the time domain template is also used to define the peak value of the second side lobe of the transmitted signal.
  • the waveform of the transmitted signal satisfies the constraints of the time domain template.
  • the value corresponding to the upper boundary of the time domain template in the first time unit is 1.
  • the upper boundary of the time domain template within the second time unit corresponds to a first value, the first value is greater than or equal to 0.15 and less than 0.3, and the second time unit is after the first time unit.
  • the fact that the second time unit is after the first time unit means that the start time of the second time unit is after the end time of the first time unit or that the start time of the second time unit is the end time of the first time unit.
  • the first time unit corresponds to the width corresponding to the main lobe of the transmission signal
  • the second time unit is the time corresponding to each side lobe on the right side of the main lobe of the transmission signal.
  • the upper boundary of the time domain template within the second time unit corresponds to the peak value of the second side lobe of the transmitted signal.
  • the lower boundary of the time domain template in the third time unit corresponds to the second value. Part of the third time unit belongs to the first time unit, and another part belongs to the second time unit.
  • the second value is less than or equal to -0.15 and greater than -0.3.
  • the lower boundary of the time domain template within the third time unit corresponds to the peak value of the first side lobe of the transmitted signal.
  • the lower boundary of the time domain template within the fourth time unit corresponds to a third value, the fourth time unit is after the third time unit, and the third value is less than or equal to -0.05 and greater than -0.3. It can be understood that the waveform of the transmitted signal is located within the area defined by the boundaries of the time domain template.
  • FIG. 9A is an example of a time domain template provided by an embodiment of the present application.
  • the sending end sends a transmission signal.
  • the transmitted signals are used for ranging, angle measurement or Doppler measurements.
  • the emitted signal can also be used for presence detection, that is, detecting the presence of a target (such as a human body); and measuring the angle, speed and other information of the target.
  • Information such as Doppler measurement, presence detection, measuring the angle and speed of the target can be regarded as specific ways of perception. In other words, perception includes measuring information such as the angle and speed of the target, Doppler measurement, presence detection, etc.
  • Emitting signals can also be used in other ways of sensing.
  • the receiving end receives the transmitted signal.
  • the receiving end may receive the transmitted signal by: receiving the signal emitted by the target (such as the human body), that is, the reflected signal corresponding to the transmitted signal.
  • the receiving end performs signal processing according to the transmitted signal.
  • the receiving end can perform signal processing based on the transmitted signal: based on the transmitted signal, it can perform ranging, presence detection, measurement of the target's angle, speed, etc., Doppler measurement, etc. It will be appreciated that Doppler measurements may be replaced by other specific means of perception, such as presence detection.
  • the sending end and the receiving end are the same communication device.
  • the sending end and the receiving end are deployed on the same node, that is, the communication device.
  • the sending end may be a transmitter on the communication device, and the receiving end may be a receiver on the communication device.
  • the transmitting end may send the transmitting signal by using the transmitter to transmit the transmitting signal.
  • the receiving end may receive the transmitting signal by using a receiver to receive the transmitting signal.
  • Figure 7A is a scenario where the communication method in Figure 10 is applicable.
  • the communication device in Figure 7A is the entity corresponding to the sending end and the receiving end. That is to say, in the scenario described in FIG. 7A , the communication device is both a sending end and a receiving end.
  • the sending end and the receiving end are different communication devices.
  • the sender and receiver are deployed on different nodes.
  • the sender is one entity and the receiver is another entity.
  • the communication method in Figure 10 can be applied to the bi-static sensing mode.
  • the transmitting end is the transmitter in this mode, and the receiving end is the receiver in this mode.
  • Figure 7B is an example of the bi-static sensing mode applicable to the communication method in Figure 10.
  • the sending end is the transmitter in Figure 7B, and the receiving end is the receiver in Figure 7B.
  • the communication method in Figure 10 can be applied to the mono-static sensing mode.
  • the transmitting end is the transmitter in this mode, and the receiving end is any receiver in the mode.
  • Figure 7C is an example of the muti-static sensing mode applicable to the communication method in Figure 10.
  • the sending end is the transmitter in Figure 7C, and the receiving end is the receiver 1 in Figure 7C.
  • the peak value of the first side lobe of the transmitted signal belongs to the first peak range, which can reduce the impact of the direct line of sight of the transmitted signal on the non-direct line of sight, ensuring both ranging performance and Doppler Measured performance.
  • FIG. 11 is an interaction flow chart of another communication method provided by an embodiment of the present application. As shown in Figure 11, the method includes:
  • the sending end sends indication information to the receiving end.
  • the indication information is used to indicate the waveform of the UWB signal transmitted by the transmitting end.
  • the receiving end receives the indication information.
  • the indication information may be included in downlink control information (DCI), media access control (medium access control, MAC) layer signaling or other signaling.
  • DCI downlink control information
  • MAC media access control
  • the sending end may send the indication information to the receiving end during the sensing service establishment phase, or may send the indication information before sending the transmission signal for ranging, angle measurement or Doppler measurement to the receiving end.
  • the indication information includes a first field, where the first field is used to indicate a waveform set to which the waveform of the transmitted signal belongs. In a possible implementation, the indication information includes a second field, and the second field is used to indicate the waveform of the transmitted signal.
  • the waveform of the UWB signal can be divided into two or more waveform sets according to actual application requirements.
  • the transmitter can pre-configure two or more waveform sets, and the waveforms in different waveform sets are suitable for different scenarios.
  • the transmitter can use waveforms in different waveform sets to transmit UWB signals in different scenarios or under different channel conditions.
  • Both the transmitting end and the receiving end may be configured with a corresponding relationship between the first field and the waveform set, and a corresponding relationship between the second field and the parameters of the waveform of the UWB signal. In this way, the receiving end can accurately determine the waveform of the transmission signal sent by the transmitting end based on the first field and the second field.
  • the waveforms of UWB signals can be divided into two waveform sets.
  • the waveforms in the first waveform set give priority to resolution and are mainly used in environments with less interference; the waveforms in the second waveform set give priority to side effects.
  • Flap suppression capability mainly used in environments with greater interference.
  • the value of one or more bits included in the first field may indicate a waveform set to which the waveform of the UWB signal transmitted by the transmitting end belongs.
  • the first field includes 1 bit. If the value of the 1 bit is 0, the first field indicates that the waveform of the UWB signal transmitted by the transmitting end belongs to the first waveform set; if the value of the 1 bit is 1, the first field indicates The waveform of the UWB signal transmitted by the transmitting end belongs to the second waveform set.
  • Table 2 shows an example of the correspondence relationship between the value of the first field and the waveform set.
  • the first field includes 2 bits.
  • the first field indicates that the waveform of the UWB signal transmitted by the sending end belongs to the first waveform set; if the value of the 2 bits is 11, the first field indicates The waveform of the UWB signal transmitted by the transmitting end belongs to the second waveform set.
  • the value of one or more bits included in the first field may be regarded as an index of the waveform set of the UWB signal.
  • the UWB signal sent by the sending end belongs to the first waveform set or the second waveform set; if the first field indicates that the waveform of the UWB signal sent by the sending end belongs to the first waveform set, the second field indicates that the waveform in the first waveform set Any waveform, that is, the value of one or more bits included in the second field is the index of any waveform in the second waveform set; if the first field indicates that the waveform of the UWB signal transmitted by the transmitter belongs to the second waveform set, The second field indicates any waveform in the second waveform set, that is, the value of one or more bits included in the second field is an index of any waveform in the second waveform set.
  • Table 3 shows the corresponding relationship between the values of the bits included in the second field and the waveforms in the first waveform set.
  • the second field indicates specific waveform 1; when the second field is 001, the second field indicates specific waveform 2; and so on. It can be understood that if the second field is 000, the second field indicates that the waveform of the UWB signal sent by the transmitting end is specific waveform 1 in the first waveform set.
  • the receiving end is configured with Table 3, and determines the waveform of the UWB signal sent by the transmitting end according to the second field and Table 3.
  • the specific waveforms in Table 3 are some of the waveforms in the first waveform set.
  • Table 4 shows the corresponding relationship between the values of the bits included in the second field and the waveforms in the second waveform set.
  • the second field indicates specific waveform 1; when the second field is 001, the second field indicates specific waveform 2; and so on. It can be understood that if the second field is 000, the second field indicates that the waveform of the UWB signal sent by the transmitting end is specific waveform 1 in the second waveform set.
  • the receiving end is configured with Table 4, and determines the waveform of the UWB signal sent by the transmitting end according to the second field and Table 4.
  • the specific waveforms in Table 4 are part of the waveforms in the second waveform set.
  • Table 3 is an example of the correspondence between the second field and the waveforms in the first waveform set
  • Table 4 is an example of the correspondence between the second field and the waveforms in the second waveform set. It should be understood that the corresponding relationship between the values of the bits included in the second field and the waveforms in the first waveform set and the corresponding relationship with the waveforms in the second waveform set can be configured according to actual requirements, which is not limited in this application.
  • the indication information includes a first field and a second field.
  • the first field and the second field can accurately indicate the waveform set to which the UWB signal transmitted by the transmitting end belongs and the parameters of the waveform of the UWB signal.
  • the indication information further includes a third field, and the third field indicates that the sending end generates the UWB signal in a digital manner or generates a UWB signal in an analog manner.
  • the third field is used to indicate that the transmitting end has a digital-to-analog conversion function (or capability) or does not have a digital-to-analog conversion function.
  • the value of one or more bits included in the third field indicates that the transmitting end generates a UWB signal in a digital manner or generates a UWB signal in an analog manner.
  • the third field includes 1 bit. If the value of the 1 bit is 1, the third field indicates that the sending end generates the UWB signal through simulation, that is, the sending end has the DAC function; if the value of the 1 bit is 0, the third field The three fields indicate that the transmitter generates UWB signals through simulation, that is, it does not have the DAC function.
  • Table 5 shows an example of the corresponding relationship between the value of the third field and whether the transmitting end has the DAC function. Refer to Table 5. If the value of 1 bit included in the third field is 0, the third field indicates that the sending end does not have the DAC function; if the value of 1 bit included in the third field is 1, the third field indicates that the sending end has the DAC function. .
  • the indication information includes the above-mentioned first field, the above-mentioned second field and the above-mentioned third field; after receiving the above-mentioned indication information, the receiving end indicates in the third field that the sending end has the DAC function (for example, the third field includes When the value of 1 bit is 1), first determine the waveform set to which the waveform of the UWB signal sent by the transmitter belongs based on the first field, and then determine the specific waveform of the waveform based on the second field.
  • the indication information includes the above-mentioned first field, the above-mentioned second field and the above-mentioned third field; after receiving the above-mentioned indication information, the receiving end indicates in the third field that the sending end does not have the DAC function (for example, the third field When the value of 1 bit is 1), the first field and the second field are ignored. That is to say, when the sending end does not have the DAC function, the values of the first field and the second field in the indication information sent can be any value. For example, by default, the first field and the second field are set to all 0 or all 1. This application is not limited.
  • indicating information packet Including the above-mentioned first field, excluding the above-mentioned second field and the above-mentioned third field.
  • the indication information sent may include the third field, excluding the first field and the second field.
  • the third field instructs the transmitting end to generate a UWB signal in a digital manner or in an analog manner, so that the receiving end can further determine the waveform of the transmitted signal and perform interference cancellation based on the waveform of the transmitted signal.
  • This application defines a new field, namely the indicator for pulse shape field, which is used to indicate the specific parameters of the waveform of the UWB signal.
  • the name of the indicator for pulse shape field is not limited.
  • the indicator for pulse shape field may include the above-mentioned first field, the above-mentioned second field and the above-mentioned third field, or may only include the above-mentioned third field.
  • Table 6 is an example of the pulse waveform indication field defined in this application. Referring to Table 6, the pulse waveform indication field defined in this application includes 5 bits, namely bit 0 to bit 4; among them, bit 0 indicates the way the sending end generates the UWB signal, and bit 1 indicates the waveform of the UWB signal transmitted by the sending end.
  • Set (pulse shapeset) indicate the parameters of the waveform of the UWB signal transmitted by the transmitter. In other words, bit 2 to bit 4 indicate the specific pulse shape (indication of specific pulse shape).
  • the sending end sends a transmission signal to the receiving end.
  • the transmitting end selects a specific waveform from one or more waveform sets to send a transmission signal, that is, a UWB signal.
  • the transmitting end selects any waveform in the first waveform set and the second waveform set to transmit the UWB signal.
  • the transmitting end selects a specific waveform 1 in the first waveform set to send a transmission signal, and the waveform of the transmission signal is the same as or substantially the same as waveform 1 in the first waveform set.
  • the receiving end receives the transmission signal sent by the transmitting end.
  • the transmitter can select a specific waveform in the following way: If the transmitter has a DAC function, it can select the corresponding waveform set according to the current needs (focusing on resolution or interference suppression capability), and select a specific waveform from the waveform set. ; If the transmitter does not have a DAC function, it will send a waveform that can be generated by analog means, such as a Butterworth waveform or a Gaussian waveform.
  • the sending end receives configuration information sent by an access network device, such as a base station, and determines to use the first waveform to send the UWB signal based on the configuration information. For example, the sending end determines to use waveform 1 in the first waveform set to send the transmission signal according to the configuration information sent by the access network device.
  • an access network device such as a base station
  • the receiving end performs interference elimination on the transmitted signal from the transmitting end according to the instruction information.
  • the receiving end can determine the specific waveform of the transmission signal sent by the transmitting end, and then perform interference elimination on the transmission signal from the transmitting end based on the specific waveform. It should be understood that the receiving end can perform interference cancellation on any UWB signal from the transmitting end, that is, the transmission signal, according to the instruction information.
  • the peak value of the first side lobe of the transmission signal sent by the receiving end belongs to the first peak range.
  • Step 1103 is optional but not required. It should be understood that if the third field in the indication information indicates that the sending end generates a UWB signal through simulation, that is, it does not indicate the waveform of the UWB signal it sends, the receiving end does not need to perform interference cancellation on the transmission signal from the sending end based on the indication information.
  • the receiving end performs signal processing based on the transmitted signal from the transmitting end.
  • the receiving end performs signal processing based on the transmitted signal from the transmitting end, which may include ranging, angle measurement, or Doppler measurement based on the transmitted signal.
  • the receiving end by receiving the indication information, the receiving end can better perform interference cancellation according to the waveform of the UWB signal transmitted by the transmitting end.
  • the method flow in Figure 10 and the method flow in Figure 11 can be two independent method flows, or they can be used together.
  • the receiving end and the sending end can execute the method flow in Figure 10 or the method flow in Figure 11 separately, or they can first execute the method flow in Figure 11 before executing the method flow in Figure 10 .
  • FIG 12 is a schematic structural diagram of a communication device 1200 provided by an embodiment of the present application.
  • the communication device 1200 can correspond to the functions or steps implemented by the sending end in each of the above method embodiments, and can also correspond to the functions or steps implemented by the receiving end in each of the above method embodiments.
  • the communication device may include a processing module 1210 and a transceiver module 1220.
  • a storage unit may also be included, which may be used to store instructions (code or programs) and/or data.
  • the processing module 1210 and the transceiver module 1220 can be coupled with the storage unit.
  • the processing module 1210 can read the instructions (code or program) and/or data in the storage unit to implement the corresponding method.
  • the transceiver module 1220 may include a sending module and a receiving module.
  • the sending module can be a transmitter
  • the receiving module can be a receiver.
  • the entity corresponding to the transceiver module 1220 may be a transceiver or a communication interface.
  • the communication device 1200 can correspondingly implement the behaviors and functions of the sending end in the above method embodiments.
  • the communication device 1200 may be a transmitting end, or may be a component (such as a chip or a circuit) used in the transmitting end.
  • the transceiver module 1220 may, for example, be used to perform all receiving or sending operations performed by the sending end in the embodiments shown in FIGS. 10 and 11 , such as step 1002 in the embodiment shown in FIG. 10 , and in the embodiment shown in FIG. 11 Step 1101, step 1102, and/or other processes used to support the techniques described herein.
  • the processing module 1210 is used to perform all operations performed by the sending end in the embodiments of FIG. 10 and FIG. 11 except for the sending and receiving operations, such as step 1001 in the embodiment shown in FIG. 10 and the embodiment shown in FIG. 11 Involves steps of generating indication information and generating transmission signals.
  • the communication device 1200 can correspondingly implement the behaviors and functions of the receiving end in the above method embodiments.
  • the communication device 1200 may be a receiving end, or may be a component (such as a chip or circuit) used in the receiving end.
  • the transceiver module 1220 may, for example, be used to perform all receiving or sending operations performed by the receiving end in the embodiments shown in FIGS. 10 and 11 , such as step 1002 in the embodiment shown in FIG. 10 , and in the embodiment shown in FIG. 11 Step 1101, step 1102, and/or other processes used to support the techniques described herein.
  • the processing module 1210 is configured to perform all operations performed by the receiving end except for the sending and receiving operations, such as step 1003 in the embodiment shown in FIG. 10 and steps 1103 and 1104 in the embodiment shown in FIG. 11 .
  • FIG. 13 is a schematic structural diagram of another communication device 130 provided by an embodiment of the present application.
  • the communication device in Figure 13 may be the above-mentioned sending end or the above-mentioned receiving end.
  • the communication device 130 includes at least one processor 1310 and a transceiver 1320 .
  • the processor 1310 and the transceiver 1320 may be used to perform functions or operations performed by the sending end, etc.
  • the transceiver 1320 performs, for example, all receiving or transmitting operations performed by the transmitting end in the embodiments of FIGS. 10 and 11 .
  • the processor 1310 is, for example, configured to perform all operations performed by the sending end in the embodiments of FIGS. 10 and 11 , except for the sending and receiving operations.
  • the processor 1310 and the transceiver 1320 may be used to perform functions or operations performed by the receiving end, etc.
  • the transceiver 1320 performs, for example, all receiving or transmitting operations performed by the receiving end in the embodiments of FIGS. 10 and 11 .
  • the processor 1310 is used to perform all operations performed by the receiving end except for transceiver operations.
  • Transceiver 1320 is used to communicate with other devices/devices over transmission media.
  • the processor 1310 uses the transceiver 1320 to send and receive data and/or signaling, and is used to implement the method in the above method embodiment.
  • the processor 1310 can implement the function of the processing module 1210, and the transceiver 1320 can implement the function of the transceiver module 1220.
  • the transceiver 1320 may include a radio frequency circuit and an antenna.
  • the radio frequency circuit is mainly used for conversion of baseband signals and radio frequency signals and processing of radio frequency signals.
  • Antennas are mainly used to send and receive radio frequency signals in the form of electromagnetic waves.
  • Input and output devices such as touch screens, display screens, keyboards, etc., are mainly used to receive data input by users and output data to users.
  • the communication device 130 may also include at least one memory 1330 for storing program instructions and/or data.
  • Memory 1330 and processor 1310 are coupled.
  • the coupling in the embodiment of this application is an indirect coupling or communication connection between devices, units or modules, which may be in electrical, mechanical or other forms, and is used for information interaction between devices, units or modules.
  • the processor 1310 may cooperate with the memory 1330.
  • Processor 1310 may execute program instructions stored in memory 1330 . At least one of the at least one memory may be included in the processor.
  • the processor 1310 can read the software program in the memory 1330, interpret and execute the instructions of the software program, and process the data of the software program.
  • the processor 1310 performs baseband processing on the data to be sent, and then outputs the baseband signal to the radio frequency circuit.
  • the radio frequency circuit performs radio frequency processing on the baseband signal and then sends the radio frequency signal out in the form of electromagnetic waves through the antenna.
  • the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor 1310.
  • the processor 1310 converts the baseband signal into data and performs processing on the data. deal with.
  • the above-mentioned radio frequency circuit and antenna can be arranged independently of the processor that performs baseband processing.
  • the radio frequency circuit and antenna can be arranged remotely and independently of the communication device.
  • connection medium between the above-mentioned transceiver 1320, processor 1310 and memory 1330 is not limited in the embodiment of the present application.
  • the memory 1330, the processor 1310 and the transceiver 1320 are connected through a bus 1340 in Figure 13.
  • the bus is represented by a thick line in Figure 13.
  • the connection between other components is only a schematic explanation. , is not limited.
  • the bus can be divided into address bus, data bus, control bus, etc. For ease of presentation, only one thick line is used in Figure 13, but it does not mean that there is only one bus or one type of bus.
  • the processor may be a general-purpose processor, a digital signal processor, an application-specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, or a discrete hardware component, which may implement or Execute each method, step and logical block diagram disclosed in the embodiment of this application.
  • a general-purpose processor may be a microprocessor or any conventional processor, etc. The steps of the methods disclosed in conjunction with the embodiments of the present application can be directly implemented by a hardware processor for execution, or can be executed by a combination of hardware and software modules in the processor.
  • FIG. 14 is a schematic structural diagram of another communication device 140 provided by an embodiment of the present application.
  • the communication device shown in FIG. 14 includes a logic circuit 1401 and an interface 1402 .
  • the processing module 1210 in Figure 12 can be implemented by the logic circuit 1401, and the transceiver module 1220 in Figure 12 can be implemented by the interface 1402.
  • the logic circuit 1401 can be a chip, a processing circuit, an integrated circuit or a system on chip (SoC) chip, etc.
  • the interface 1402 can be a communication interface, an input-output interface, etc.
  • the logic circuit and the interface may also be coupled to each other.
  • the embodiments of this application do not limit the specific connection methods of the logic circuits and interfaces.
  • the logic circuit and interface may be used to perform the above functions or operations performed by the sending end, etc. In some embodiments of the present application, the logic circuit and interface may be used to perform the above functions or operations performed by the receiving end, etc.
  • This application also provides a computer-readable storage medium, which stores computer programs or instructions.
  • the computer program or instructions When the computer program or instructions are run on a computer, the computer is caused to execute the method of the above embodiments.
  • the computer program product includes instructions or computer programs. When the instructions or computer programs are run on a computer, the methods in the above embodiments are executed.
  • This application also provides a communication system, including the above-mentioned sending end and the above-mentioned receiving end.
  • Figure 15 is an example of a time domain template provided by the embodiment of the present application.
  • the area enclosed by the dotted line is the time domain template.
  • the value corresponding to the lower boundary of the time domain template is -0.015.
  • (-1.25,0.015), (1,0.3), (1.50,0.015) are the time domain templates.
  • Three inflection points on the upper boundary that is, the intersection of the two boundary lines). The inflection point is the boundary point on the boundary of the time domain template.
  • Figure 15 shows two waveforms, one is a Gaussian waveform and the other is a Caesar waveform.
  • the Gaussian waveform can be expressed as:
  • A represents the amplitude
  • can be used to adjust the width of the waveform.
  • 8.8 e-10
  • L represents the length of the non-zero element
  • the waveform amplitude is normalized.
  • the length of L is 3*Tp.
  • the Caesar waveform can be expressed as:
  • Two waveforms can get two T d values. Here we take the average of the two to get a T d . It should be noted that when drawing the graph, we slightly shifted the two waveforms in the time domain. The translation operation does not affect the values of T C and T d .
  • Time domain template 1 The lower boundary of the time domain template corresponds to the first value (i.e. a straight line), and the range of the first value is [-0.2,-0.001]; the time domain template is within the time area [-1.25, 1]
  • the value corresponding to the upper boundary of is 1, the value corresponding to the upper boundary of the time domain template in the time area (1, third value] is 0.3, and the upper boundary of the time domain template in the time area (third value, ⁇ ) corresponds to
  • the value of is the second value (that is, a straight line), the value range of the second value is [0.001,0.2], and the value range of the third value is (1.0,2.0].
  • [-1.25, the third value] is the A time area
  • the time area [-1.25, 1] is the first sub-area
  • the time area (1, third value] is the second sub-area.
  • the time area (third value, ⁇ ) is the second time area. Need to pay attention , this application does not limit the boundary values of each time region.
  • the time region [-1.25, 1) is the first sub-region
  • the time region [1, third value] is the second sub-region.
  • [-1.25 , the third value) is the first time area
  • the time area [third value, ⁇ ) is the second time area.
  • Time domain template 2 The lower boundary of the time domain template corresponds to the first value (i.e. a straight line), and the range of the first value is [-0.2,-0.001]; time domain The value corresponding to the upper boundary of the template in the time area [-1.25, third value] is 1, and the value corresponding to the upper boundary of the time domain template in the time area (third value, ⁇ ) is the second value (i.e. a straight line ), the value range of the second value is [0.001,0.2], and the value range of the third value is (1.0,2.0]. [-1.25, third value] is the first time area. Time area (third value , ⁇ ) is the second time region. It should be noted that this application does not limit the boundary values of each time region.
  • ⁇ T is an arbitrary constant, and the instant domain template can be arbitrarily offset in the time domain; y1 (i.e., the first value) is an adjustable parameter, with a value range of [0.001, 0.2] ; y2 is also an adjustable parameter, and the value range of y2 is less than or equal to 0.2; ⁇ is a parameter, and the value can be from 0 to 100.
  • y1 i.e., the first value
  • y2 is also an adjustable parameter, and the value range of y2 is less than or equal to 0.2
  • is a parameter, and the value can be from 0 to 100.
  • is 0.1
  • the specific coordinates of the third inflection point are (1.75,0.015).
  • Time domain template three The lower boundary of the time domain template corresponds to the first value.
  • the time domain template is an axially symmetrical figure in the first time area.
  • the time domain template is in the second time area outside the first time area.
  • the upper boundary corresponds to the second value.
  • the first time area includes the third time area, the fourth time area, and the fifth time area in chronological order.
  • the upper boundary of the time domain template in the third time area corresponds to the third value.
  • the upper boundary of the time domain template in the fourth time area corresponds to a value of 1
  • the upper boundary of the time domain template in the fifth time area corresponds to a third value
  • the range of the first value is [-0.2, -0.001]
  • the value range of the second value is [0.001,0.2].
  • the value range of the third value may be [0.1, 0.9].
  • Time domain template three is an axially symmetrical figure in the first time region (the time region indicated by Tw 1 in Figure 19).
  • time domain template three is left-right symmetrical, that is, it is an axially symmetrical figure on the entire time axis.
  • the area surrounded by the dotted line is the time domain template three
  • the time area indicated by Tw 1 is the first time area
  • the time area indicated by Tw 2 is the fourth time area
  • Tc 1 is the waveform (the waveform can be Gaussian Waveform or Caesar waveform, or the average of the results of two waveforms)
  • y the distance between two points of y2
  • Tw 1 (1+2 ⁇ 1 ) Tc 1
  • Tc 2 is the waveform (the waveform can be a Gaussian waveform or Caesar Waveform, or the average of the results of two waveforms)
  • y the distance between two points of y3
  • Tw 2 (1+2 ⁇ 2 ) Tc 2 .
  • the coordinates of the three inflection points on time domain template three are (Tw 2 /2,y3), (Tw 1 /2,y3) and (Tw 1 /2,y2) respectively. ).
  • the value range of is [0.1,0.9], y3 needs to be greater than y2; ⁇ 1 is a parameter, the value can be from 0 to 100, ⁇ 2 is a parameter, the value can be from 0 to 100, but the value needs to ensure that Tw 2 ⁇ Tw 1 , that is, (1+2 ⁇ 2 )Tc 2 ⁇ (1+2 ⁇ 1 )Tc 1 .
  • y1 y2.
  • FIG 20 is another example of time domain template three provided by the embodiment of the present application.
  • Time domain template three is an axially symmetrical figure in the first time region (the time region indicated by Tw 1 in Figure 19).
  • the area surrounded by the dotted line is time domain template three
  • the time area indicated by Tw 1 is the first time area
  • the time area indicated by Tw 2 is the fourth time area
  • Tc 1 is on the waveform (the waveform can be Gaussian Waveform or Caesar waveform, or the average of the results of the two waveforms)
  • y the distance between the two points of y2
  • Tw 1 (1+2 ⁇ 1 ) Tc 1 .
  • the coordinates of the three inflection points on time domain template three are (2.25-Tw 2 /2,y3), (Tw 1 /2,y3) and (Tw 1 /2 ,y2).
  • time domain template three Here are some possible ways to obtain time domain template three.
  • Tc 1 and Tc 2 are determined according to y2 and y3 respectively. After determining ⁇ 1 and ⁇ 2 , Tw1 and Tw2 are obtained.
  • Tc1 is determined based on y2. After determining ⁇ 1 , Tw1 is obtained. Tw2 is related to Tw1. After Tw1 is obtained, Tw2 can be determined directly.

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  • Near-Field Transmission Systems (AREA)

Abstract

La demande concerne un procédé de communication, un appareil de communication et un support de stockage lisible par ordinateur. La présente demande est appliquée à des systèmes de réseau local sans fil qui prennent en charge une série de protocoles 802.11, c'est-à-dire des protocoles Wi-Fi de nouvelle génération de IEEE 802.11ax, tels que 802.11be, 802.15.4z, 802.15.4ab, Wi-Fi7 ou EHT, et tels qu'une prochaine génération de 802.11be, Wi-Fi8, etc., et peut également être appliquée à des systèmes de réseau personnel sans fil à bande ultra-large (UWB) et à des systèmes de détection. Le procédé consiste à : générer un signal d'émission, un pic d'un premier lobe latéral du signal d'émission se situant dans une première plage de pics ; et transmettre le signal d'émission, le signal d'émission étant utilisé pour la télémétrie, la mesure d'angle ou la mesure Doppler. Dans des modes de réalisation de la présente demande, le pic du premier lobe latéral du signal d'émission se situe dans la première plage de pics, et peut réduire l'influence d'un diamètre de vue directe du signal d'émission sur un diamètre de vue non directe.
PCT/CN2023/105859 2022-07-06 2023-07-05 Procédé de communication, appareil de communication et support de stockage lisible par ordinateur WO2024008115A1 (fr)

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CN202211510585.2 2022-11-29
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030053555A1 (en) * 1997-12-12 2003-03-20 Xtreme Spectrum, Inc. Ultra wide bandwidth spread-spectrum communications system
CN1754362A (zh) * 2003-02-25 2006-03-29 横滨Tlo株式会社 脉冲波形生成方法
CN101388872A (zh) * 2007-09-10 2009-03-18 华为技术有限公司 数据信号调制、解调方法以及收发机和收发系统
WO2009066985A2 (fr) * 2007-11-22 2009-05-28 Mimos Berhad Dispositif de formation d'impulsions à bande ultralarge destiné à la mitigation d'interférences dans la bande

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030053555A1 (en) * 1997-12-12 2003-03-20 Xtreme Spectrum, Inc. Ultra wide bandwidth spread-spectrum communications system
CN1754362A (zh) * 2003-02-25 2006-03-29 横滨Tlo株式会社 脉冲波形生成方法
CN101388872A (zh) * 2007-09-10 2009-03-18 华为技术有限公司 数据信号调制、解调方法以及收发机和收发系统
WO2009066985A2 (fr) * 2007-11-22 2009-05-28 Mimos Berhad Dispositif de formation d'impulsions à bande ultralarge destiné à la mitigation d'interférences dans la bande

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